NASA Logo

NTRS

NTRS - NASA Technical Reports Server

Press Enter or click the Search button to begin your search.

Back to Results
Electromagnetic Melt Processing: A Pathway to New Additive Manufacturing Technologies for Functional High-Performance ThermoplasticsIn this study, we apply the electromagnetic (EM) melt processing of thermoplastics on an innovative EM field-driven powder bed fusion additive manufacturing (AM) concept for high-performance functional parts: Selective Microwave Melting/Sintering (SMM/SMS). This technique leverages the EM susceptibility of carbon nanotube-coated polymer micro-pellets to achieve rapid, localized heating and powder fusion. Thus, selective microwave melting (SMM) was used to fabricate multilayer specimens made of recycled polyphenylene sulfide (rPPS) and
carbon nanotubes (CNTs). The resulting SMM specimens exhibited very good interlayer integrity, localized fusion at pellet boundaries, and tolerable residual porosity, indicating effective fusion and acceptable consolidation. CNT-rich interphases were retained after irradiation, generating anisotropic electrically active network pathways and enabling conductivity enhancement at low filler content. At only 1.0 wt% CNT, the specimens exhibited
electrical conductivity approximately three orders of magnitude higher than neat rPPS. Dynamic mechanical analysis showed improved viscoelastic response relative to neat rPPS, while tensile testing confirmed that the SMM-processed specimens retained practical mechanical integrity despite localized voids. These results demonstrate that SMM can effectively consolidate EM susceptible thermoplastic powder beds while preserving their segregated conductive networks. This may become a scalable route for producing multifunctional thermoplastic parts with low filler loadings, tunable anisotropy, and structured materials and parts. Overall, the findings suggest that EM field-based AM can help overcome key limitations of conventional thermoplastic processing by enabling scalable, energy-efficient fabrication of nanostructured composites and expanding AM to a broader range of resins, including high-performance thermoplastics with customized functional properties.
Document ID
20260004333
Acquisition Source
Marshall Space Flight Center
Document Type
Preprint (Draft being sent to journal)
Authors
Madara Mohoppu
(University of Mississippi Oxford, United States)
Utsab Ayan
(University of Mississippi Oxford, United States)
Olivia McNair
(University of Mississippi Oxford, United States)
Oussama Oulhakem
(University of Mississippi Oxford, United States)
Ahmed Al-Ostaz
(University of Mississippi Oxford, United States)
Enrique Jackson
(Marshall Space Flight Center Redstone Arsenal, United States)
Byron S. Villacorta
(University of Mississippi Oxford, United States)
Date Acquired
May 14, 2026
Publication Date
June 26, 2026
Publication Information
Publication: Additive Manufacturing
Publisher: Elsevier Science
Subject Category
Chemistry and Materials (General)
Funding Number(s)
CONTRACT_GRANT: 80NSSCM0041
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
External Peer Committee
Keywords
Powder bed fusion
Electrical conductivity
Nanocomposites
High-performance thermoplastics
Electromagnetic melt processing
No Preview Available